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Diffusion of a disordered protein on its folded ligand.


ABSTRACT: Intrinsically disordered proteins often form dynamic complexes with their ligands. Yet, the speed and amplitude of these motions are hidden in classical binding kinetics. Here, we directly measure the dynamics in an exceptionally mobile, high-affinity complex. We show that the disordered tail of the cell adhesion protein E-cadherin dynamically samples a large surface area of the protooncogene β-catenin. Single-molecule experiments and molecular simulations resolve these motions with high resolution in space and time. Contacts break and form within hundreds of microseconds without a dissociation of the complex. The energy landscape of this complex is rugged with many small barriers (3 to 4 k B T) and reconciles specificity, high affinity, and extreme disorder. A few persistent contacts provide specificity, whereas unspecific interactions boost affinity.

SUBMITTER: Wiggers F 

PROVIDER: S-EPMC8449409 | biostudies-literature | 2021 Sep

REPOSITORIES: biostudies-literature

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Diffusion of a disordered protein on its folded ligand.

Wiggers Felix F   Wohl Samuel S   Dubovetskyi Artem A   Rosenblum Gabriel G   Zheng Wenwei W   Hofmann Hagen H  

Proceedings of the National Academy of Sciences of the United States of America 20210901 37


Intrinsically disordered proteins often form dynamic complexes with their ligands. Yet, the speed and amplitude of these motions are hidden in classical binding kinetics. Here, we directly measure the dynamics in an exceptionally mobile, high-affinity complex. We show that the disordered tail of the cell adhesion protein E-cadherin dynamically samples a large surface area of the protooncogene β-catenin. Single-molecule experiments and molecular simulations resolve these motions with high resolut  ...[more]

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